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Optimizing the electromechanical response in morphotropic BiFeO3

机译:优化Morphotopic Bifeo3中的机电响应

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摘要

Morphotropic phase boundaries (MPBs) in ferroelectrics are highly desired phase transition regions, where crystal structure becomes extremely susceptible to external stimuli leading to very large electromechanical responses with applications in high-performance piezoelectric actuators and sensors. Since the recent discovery of a strain-driven MPB in chemically simple oxides, especially in thin films of BiFeO3 (BFO), much of the research emphasis has been on the physical structural MPBs which spatially separate intimately mixed phases in corrugated nanoscale regions. Very large electromechanical responses and other coupled novel functionalities, i.e. magnetism and electronic conductivity have been observed at such physical structural MPBs. In this report, we investigate and identify a region in the thickness-dependent phase diagram of the morphotropic BFO thin films at which a superior piezoelectric performance is achieved. In this region, an electrically recoverable strain approximately 40% higher than the previously reported values for the morphotropic BFO is observed. This enhanced electromechanical coupling has been attributed to the degeneracy of the mixed-phase states and concurrent increased mechanical softening.
机译:在铁电体准同型相界(MPBS)是高度期望的相变区域,其中晶体结构变得非常容易受到外界刺激导致具有高性能压电致动器和传感器的应用非常大的机电响应。由于在化学上简单氧化物最近发现的菌株驱动MPB的,特别是在的BiFeO 3(BFO)的薄膜,许多研究的重点一直在物理结构MPBS在空间上在波纹纳米级区域分离紧密混合相。非常大的机电响应和其它耦合新颖官能团,即磁性和电子导电性已经在这样的物理结构MPBS被观察到。在本报告中,我们调查并在其中一个优良的压电性能,实现同型BFO薄膜的厚度取决于相图确定的区域。在该区域中,电可恢复应变比同型BFO先前报道的值高约40%观察到。这种增强的机电耦合归因于混合相状态的简并性和并发增加的机械软化。

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